催化作用
化学
双金属片
甲烷厌氧氧化
离解(化学)
密度泛函理论
吸附
甲烷
无机化学
铜
甲烷单加氧酶
异核分子
氢
光化学
协同催化
产量(工程)
氧气
同核分子
合理设计
金属
部分氧化
多相催化
组合化学
析氧
过渡金属
反应中间体
作者
Jin-Yue Qi,Xin Dong,Lijiao Zhang,Yulin Zhao,Shun Chen,Y U E J I He,Sheng‐Gui He,Yuan Yang,Shuang-Quan Zang
摘要
Partial oxidation of methane with molecular oxygen to produce hydrogen is a promising strategy for hydrogen generation. However, maintaining catalyst stability remains challenging, as the catalyst is prone to overoxidation by the strong oxidant O2 during the reaction. Herein, benefiting from state-of-the-art mass spectrometry, we demonstrate that heteronuclear metal cation CuRh+ catalyzes the reaction of methane with O2 at room temperature to yield 2H2 and CO2. Comparative studies show that even though the homonuclear Rh2+ system can construct an analogous catalytic cycle, it is more susceptible to overoxidation by O2, leading to the formation of the undesirable intermediate Rh2O3+. Cu-doping markedly enhances the antioveroxidation capability of CuRh+ to result in the generation of stable and desirable intermediate CuRhO+ under an oxygen atmosphere. Density functional theory shows that Cu plays a suppressive role during two steps of the overoxidation reaction. By reducing the electron supply from the metal site to O2, Cu hampers the initial adsorption step and compels the O-O bond dissociation to rely on orbital reorganization across a large energy gap. This finding not only provides new insights into the unique role of copper in heterogeneous catalysis but also offers a valuable guidance for the rational design of low-cost and stable catalysts for CH4-to-H2 under mild conditions.
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